WMSIC Electronic Components

Littelfuse ASMDC185F/33-2 ASMDC185F

ModelASMDC185F/33-2
Package2920
BrandLittelfuse
Price Price on request Electronic component prices change quickly with market supply and demand. Please refer to the latest WMSIC quotation for current pricing.
Configuration
1 options
Configuration 26+

Available for RFQ

Technical data

Product details

20 specifications

Core information

Product name
Littelfuse ASMDC185F / 33-2
Type
LITTELFUSE
Unit
Electronic Component
Minimum package
100 圆盘

Technical parameters

Electronic Component
Electronic Component
Electronic Component
Electronic Component
Electronic Component
LITTELFUSE
Electronic Component
ASMDC185F/33-2
Electronic Component
1
Package
2920
Electronic Component
Resettable Fuse
Electronic Component
0.219g
Electronic Component
1
Electronic Component
BM0058429850
Operating Temperature
40℃~+85℃
Voltage Rating(Vmax)
33V
Power(Pd)
1.9W
Current(Imax)
100A
Electronic Component
Electronic Component
Electronic Component
100

For datasheets, package documents, compatible-part guidance, or other technical resources, contact WMSIC customer service. Availability is confirmed case by case.

ASMDC185F/33-2 产品概述

一、概述与定位

ASMDC185F/33-2 为 Littelfuse(美国力特)系列的自恢复聚合物正温度系数(PTC)保险器,属于 2920 封装的表面贴装器件(SMD)。该器件针对汽车与工业低压直流保护场景设计,在过流或短路事件发生时能迅速限流并在故障消除后自动恢复,适用于线束、模块输入保护、车载电子与消费类电源保护等场合。

二、主要电气参数

  • 额定耐压:Vmax 33 VDC
  • 保持电流:Ihold = 1.85 A(器件在正常工作状态下可连续承载的最大电流,且不会触发跳闸)
  • 跳闸电流:Itrip = 3.7 A(达到该电流时器件温度上升并进入高阻态,实现限流保护)
  • 跳断后阻值:R1max = 230 mΩ(触发后稳态阻值上限)
  • 初始态阻值:Rmin = 68 mΩ(常温未触发时的典型低阻值)
  • 最大额定电流:Imax = 100 A(短时冲击/耐受性指标,详见厂方冲击测试条件)
  • 峰值/短时承受:说明资料中常见 40 A 的短时承受能力(以实际应用中持续时间和热工条件为准)
  • 功耗/热极限:Pd ≈ 1.7–1.9 W(器件达到热平衡时的功耗水平,受封装与散热条件影响)
  • 工作温度:-40 ℃ 至 +85 ℃

三、热与触发行为说明

PTC 的触发依赖于电流-温度耦合:当通过电流产生的焦耳热使器件温度上升到临界温度时,聚合物膨胀导致电阻显著上升,从而限制电流。该型号以 3.7 A 为典型跳闸电流,触发后阻值可上升到数百毫欧级(R1max)。器件冷却后电阻逐步恢复至初始值(Rmin),实现自恢复功能。注意器件功耗 Pd 与环境散热、PCB 铜箔面积和封装贴装工艺密切相关,实际应用需做热仿真或样机验证。

四、封装与焊接

器件为 SMD 形式,尺寸约 7.7 × 5.3 × 1.2 mm(标注 2920 封装),采用焊盘式安装并以卷带(T/R)供货,适合回流焊工艺。推荐在 PCB 上提供足够的铜地/散热面积,保证在接近 Ihold 的长期工作时热量能有效散发。建议遵循厂方的推荐焊盘尺寸与回流曲线以避免热损伤或焊接缺陷。

五、典型应用与选型建议

适用场景包括车载模块输入保护(点烟器、USB、电源线)、电池管理系统的支路保护、消费电子的外部供电保护等。选型时注意:

  • 若正常工作电流接近或超过 1.85 A,应选更高 Ihold 的型号或并联设计(并联需谨慎,应匹配同型号并严格控制工艺);
  • 对于经常出现长时间高电流冲击的环境,需验证器件能否在所需冲击时间内承受,并关注跳闸后能否在允许时间内恢复;
  • 高温环境下需按温度-电流特性做降额设计。

六、可靠性与使用注意

  • 避免长期在额定温度上限附近工作;高温会降低触发电流并影响寿命。
  • 反复触发会使最大阻值有一定漂移,应在设计中考虑跳闸后电阻上升对系统影响。
  • 存储及回流焊前后应遵循防潮和静电保护规范。

总结:ASMDC185F/33-2 提供了在紧凑 SMD 封装下合理的保持/跳闸电流比与快速自恢复特性,适合汽车与工业低压系统的过流保护应用。实际设计中建议结合 PCB 散热、工作温度和冲击持续时间进行样机验证,以确保长期可靠性。

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